Multi-layer piezoelectric ceramic component and piezoelectric device
11393972 · 2022-07-19
Assignee
Inventors
- Tomohiro Harada (Takasaki, JP)
- Takayuki Goto (Takasaki, JP)
- Hiroyuki Shimizu (Takasaki, JP)
- Sumiaki Kishimoto (Takasaki, JP)
Cpc classification
H10N30/871
ELECTRICITY
International classification
Abstract
A multi-layer piezoelectric ceramic component includes: a piezoelectric ceramic body having a cuboid shape, having upper and lower surfaces facing in a thickness direction, first and second end surfaces facing in a length direction, and a pair of side surfaces facing in a width direction, and including first and second regions; first internal electrodes in the first region; second internal electrodes in the second region; third internal electrodes in the first and second regions; a first terminal electrode formed on the first end surface and electrically connected to the first internal electrodes; a second terminal electrode formed on the first end surface and electrically connected to the second internal electrodes; a third terminal electrode formed on the second end surface and electrically connected to the third internal electrodes; a first surface electrode formed on the upper surface; and a second surface electrode formed on the lower surface.
Claims
1. A multi-layer piezoelectric ceramic component, which is a bimorph piezoelectric actuator, comprising: a piezoelectric ceramic body having a cuboid shape in which a length is larger than a width and the width is larger than a thickness, having an upper surface and a lower surface facing each other in a thickness direction, a first end surface and a second end surface facing each other in a length direction, and a pair of side surfaces facing each other in a width direction, and including a first region on a side of the upper surface in the thickness direction and a second region on a side of the lower surface in the thickness direction; first internal electrodes that are formed in the first region and are drawn to the first end surface; second internal electrodes that are formed in the second region and are drawn to the first end surface; third internal electrodes that are formed in the first region and the second region and are drawn to the second end surface, the third internal electrodes being laminated alternately with the first internal electrodes in the first region at predetermined distances from the respective first internal electrodes in the thickness direction and being laminated alternately with the second internal electrodes in the second region at predetermined distances from the respective second internal electrodes in the thickness direction; a first end surface terminal electrode that is formed on the first end surface and is electrically connected to the first internal electrodes; a first surface terminal electrode that is formed on the upper surface and is electrically connected to the first end surface terminal electrode; a second end surface terminal electrode that is formed on the first end surface, is electrically insulated from the first end surface terminal electrode, and is electrically connected to the second internal electrodes; a second surface terminal electrode that is formed on the upper surface and is electrically connected to the second end surface terminal electrode; a third end surface terminal electrode that is formed on the second end surface and is electrically connected to the third internal electrodes; a first surface electrode that is formed on the upper surface, is electrically connected to the third end surface terminal electrode, and extends from the second end surface to face one of the first internal electrodes; and a second surface electrode that is formed on the lower surface, is electrically connected to the third end surface terminal electrode, extends from the second end surface to face one of the second internal electrodes, and has a length shorter than a length of the first surface electrode, wherein the pair of side surfaces, a part of the upper surface, and the lower surface are covered with an insulating film made of a material different from a material of the piezoelectric ceramic body, and the insulating film has a single opening on the upper surface through which the first surface terminal electrode, the second surface terminal electrode, and the first surface electrode (105) are partially exposed.
2. The multi-layer piezoelectric ceramic component according to claim 1, wherein the first internal electrodes, the second internal electrodes, and the third internal electrodes each have a width equal to a distance between the pair of side surfaces.
3. The multi-layer piezoelectric ceramic component according to claim 1, wherein the insulating film formed on the upper surface has a length equal to a length of the second surface electrode.
4. A piezoelectric device comprising: a vibration member; a fixing jig; and a multi-layer piezoelectric ceramic component, which is a bimorph piezoelectric actuator, mounted to the vibration member via the fixing jig, the multi-layer piezoelectric ceramic component comprising: a piezoelectric ceramic body having a cuboid shape in which a length is larger than a width and the width is larger than a thickness, having an upper surface and a lower surface facing each other in a thickness direction, a first end surface and a second end surface facing each other in a length direction, and a pair of side surfaces facing each other in a width direction, and including a first region on a side of the upper surface in the thickness direction and a second region on a side of the lower surface in the thickness direction, first internal electrodes that are formed in the first region and are drawn to the first end surface; second internal electrodes that are formed in the second region and are drawn to the first end surface; third internal electrodes that are formed in the first region and the second region and are drawn to the second end surface, the third internal electrodes being laminated alternately with the first internal electrodes in the first region at predetermined distances from the respective first internal electrodes in the thickness direction and being laminated alternately with the second internal electrodes in the second region at predetermined distances from the respective second internal electrodes in the thickness direction; a first end surface terminal electrode that is formed on the first end surface and is electrically connected to the first internal electrodes; a first surface terminal electrode that is formed on the upper surface and is electrically connected to the first end surface terminal electrode; a second end surface terminal electrode that is formed on the first end surface, is electrically insulated from the first end surface terminal electrode, and is electrically connected to the second internal electrodes; a second surface terminal electrode that is formed on the upper surface and is electrically connected to the second end surface terminal electrode; a third end surface terminal electrode that is formed on the second end surface and is electrically connected to the third internal electrodes; a first surface electrode that is formed on the upper surface, is electrically connected to the third end surface terminal electrode, and extends from the second end surface to face one of the first internal electrodes; and a second surface electrode that is formed on the lower surface, is electrically connected to the third end surface terminal electrode, extends from the second end surface to face one of the second internal electrodes, and has a length shorter than a length of the first surface electrode, wherein the pair of side surfaces, a part of the upper surface, and the lower surface are covered with an insulating film made of a material different from a material of the piezoelectric ceramic body, the insulating film has a single opening on the upper surface from which the first surface terminal electrode, the second surface terminal electrode, and the first surface electrode are partially exposed, and the region of the upper surface on the first end surface side including the opening is joined to the fixing jig.
Description
BRIEF DESCRIPTION OF DRAWINGS
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DETAILED DESCRIPTION OF EMBODIMENTS
(18) Hereinafter, an embodiment of the present disclosure will be described with reference to the drawings. In each figure, an X-Y-Z coordinate system is used in some cases. A multi-layer piezoelectric ceramic component according to an embodiment of the present disclosure will be described.
(19) Configuration of Multi-Layer Piezoelectric Ceramic Component
(20)
(21) As shown in
(22) The piezoelectric ceramic body 101 is made of a piezoelectric ceramic material. The piezoelectric ceramic body 101 includes a plurality of piezoelectric ceramic layers arranged in a Z-axis direction. The plurality of piezoelectric ceramic layers are provided in the Z-axis direction between the first internal electrodes 102 and the third internal electrodes 104 and also between the second internal electrodes 103 and the third internal electrodes 104. In this embodiment, the plurality of piezoelectric ceramic layers are also referred to as the piezoelectric ceramic body 101.
(23) The piezoelectric ceramic body 101 may be made of, for example, lithium niobate (LiNbO.sub.3), lithium tantalite (LiTaO.sub.3), or lead zirconate titanate (PbZrO.sub.3—PbTiO.sub.3).
(24) As shown in
(25) For the surfaces of the piezoelectric ceramic body 101, surfaces facing in the width direction (Y-axis direction) are assumed as a first side surface 101a and a second side surface 101b, and surfaces facing in the length direction (X-axis direction) are assumed as a first end surface 101c and a second end surface 101d. Further, surfaces facing in the thickness direction (Z-axis direction) are assumed as an upper surface 101e and a lower surface 101f.
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(27)
(28)
(29) As shown in
(30) The first internal electrodes 102 are formed in the first region 101g and face the third internal electrodes 104 and the first surface electrode 105 via the piezoelectric ceramic body 101 (see
(31) Further, the first internal electrode 102 has the same width as the width (Y-axis direction) of the piezoelectric ceramic body 101 and is exposed at the first side surface 101a and the second side surface 101b (see
(32) The second internal electrodes 103 are formed in the second region 101h and face the third internal electrodes 104 and the second surface electrode 106 via the piezoelectric ceramic body 101 (see
(33) Further, the second internal electrode 103 has the same width as the width (Y-axis direction) of the piezoelectric ceramic body 101 and is exposed at the first side surface 101a and the second side surface 101b (see
(34) The third internal electrodes 104 are formed in the first region 101g and the second region 101h.
(35) The third internal electrodes 104 are laminated alternately with the first internal electrodes 102 in the first region 101g at predetermined distances from the respective first internal electrodes 102 in the thickness direction (Z-axis direction) and face the respective first internal electrodes 102 via the piezoelectric ceramic body 101 (see
(36) Further, the third internal electrodes 104 are laminated alternately with the second internal electrodes 103 in the second region 101h at predetermined distances from the respective second internal electrodes 103 in the thickness direction (Z-axis direction) and face the respective second internal electrodes 103 via the piezoelectric ceramic body 101 (see
(37)
(38) Further, the third internal electrode 104 has the same width as the width (Y-axis direction) of the piezoelectric ceramic body 101 and is exposed at the first side surface 101a and the second side surface 101b (see
(39) The first surface electrode 105 extends from the second end surface 101d side to be formed on the upper surface 101e (see
(40) The second surface electrode 106 extends from the second end surface 101d side to be formed on the lower surface 101f and is electrically connected to the third end surface terminal electrode 109 (see
(41) The first end surface terminal electrode 107 is formed on the first end surface 101c (see
(42) The second end surface terminal electrode 108 is formed on the first end surface 101c (see
(43) The third end surface terminal electrode 109 is formed on the second end surface 101d (see
(44) The first surface terminal electrode 110 is formed on the upper surface 101e (see
(45) The second surface terminal electrode 111 is formed on the upper surface 101e (see
(46) The first internal electrodes 102, the second internal electrodes 103, the third internal electrodes 104, the first surface electrode 105, the second surface electrode 106, the first end surface terminal electrode 107, the second end surface terminal electrode 108, the third end surface terminal electrode 109, the first surface terminal electrode 110, and the second surface terminal electrode 111 are each made of an electrically conductive material. The electrically conductive material may be any one of, for example, Ag, Ag/Pd, Pd, Cu, and Ni.
(47) The multi-layer piezoelectric ceramic component 100 has the configuration as described above. As described above, the first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 are formed in the piezoelectric ceramic body 101, the first internal electrodes 102 and the third internal electrodes 104 face each other via the piezoelectric ceramic body 101, and the second internal electrodes 103 and the third internal electrodes 104 face each other via the piezoelectric ceramic body 101. The first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 are insulated from one another.
(48) The size of the multi-layer piezoelectric ceramic component 100 is not particularly limited, but assuming that the length (X-axis direction) is L and the width (Y-axis direction) is W, it is suitable that L/W is approximately 16 to 50. Further, it is suitable that the thickness (Z-axis direction) is approximately 0.5 mm to 1.5 mm. Further, a ratio of the length of the piezoelectric ceramic body 101 exposed from the second surface electrode 106 to the length of the piezoelectric ceramic body 101 exposed from the first surface electrode 105 is 1.7% or more and 50% or less. When the ratio becomes smaller than 1.7%, positioning accuracy for clamping the multi-layer piezoelectric ceramic component is reduced, which is not favorable. When the ratio becomes larger than 50%, the amount of displacement in the second end surface 101d is impaired, which is not favorable. As an example, the length of the piezoelectric ceramic body 101 exposed from the first surface electrode 105 in the X-axis direction is 2 mm, and the length of the piezoelectric ceramic body 101 exposed from the second surface electrode 106 in the X-axis direction is 5 mm.
(49) Operation of Multi-Layer Piezoelectric Ceramic Component
(50) In the multi-layer piezoelectric ceramic component 100, a voltage can be independently applied between the first internal electrodes 102 and the third internal electrodes 104 and between the second internal electrodes 103 and the third internal electrodes 104.
(51) When a voltage is applied between the first internal electrodes 102 and the third internal electrodes 104, an inverse piezoelectric effect occurs in the piezoelectric ceramic body 101 between the first internal electrodes 102 and the third internal electrodes 104 and causes deformation (expansion and contraction) in the X-axis direction in the first region 101g. Further, when a voltage is applied between the second internal electrodes 103 and the third internal electrodes 104, an inverse piezoelectric effect occurs in the piezoelectric ceramic body 101 between the second internal electrodes 103 and the third internal electrodes 104 and causes deformation (expansion and contraction) in the X-axis direction in the second region 101h.
(52) In such a manner, in the multi-layer piezoelectric ceramic component 100, the deformation in the first region 101g and the deformation in the second region 101h can be independently controlled. The first region 101g and the second region 101h are separately deformed in the X-axis direction, and thus the multi-layer piezoelectric ceramic component 100 can be deformed (bent) in the Z-axis direction.
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(54) It should be noted that when the thickness of the first region 101g and the thickness of the second region 101h have a ratio of 1:1, the first region 101g and the second region 101h are symmetrical with each other in terms of the amount of deformation, which is suitable. Further, the waveforms of the voltage V1 and the voltage V2 are not limited to those shown in
(55) Here, an operation when one end of the multi-layer piezoelectric ceramic component 100 is fixed with a fixing jig such as a clamp will be described.
(56) First,
(57) In the multi-layer piezoelectric ceramic component 500 according to the comparative example, the length of a second surface electrode 506 in the X-axis direction is the same as the length of the first surface electrode 105 in the X-axis direction. In such a configuration, a jig including an upper holding portion 251u and a lower holding portion 251d that have the same length is used as a fixing jig 251. This is because the use of the fixing jig 251 prevents the first surface electrode 105 and the second surface electrode 506 from being bitten by the fixing jig 251, the function of the piezoelectric ceramic body 101 is exerted over a wide area, and large vibration V is thus obtained in the multi-layer piezoelectric ceramic component 500.
(58) However, when the fixing jig 251 keeps holding one end of the multi-layer piezoelectric ceramic component 500 while the multi-layer piezoelectric ceramic component 500 is being operated, the multi-layer piezoelectric ceramic component 500 vibrates with a line 500L as a reference, the line 500L connecting a tip end of the upper holding portion 251u and a tip end of the lower holding portion 251d. Thus, local stress S1 in the Z-axis direction occurs in the vicinity of the line 500L. This may generate a phenomenon such as a crush of the piezoelectric ceramic body 101 or a peel-off of the piezoelectric ceramic body 101 and each electrode in the vicinity of the fixing jig 251.
(59) In contrast to the above comparative example,
(60) In the multi-layer piezoelectric ceramic component 100 according to the embodiment, the length of the second surface electrode 106 in the X-axis direction is configured to be shorter than the length of the first surface electrode 105 in the X-axis direction. With such a configuration, since the second surface electrode 106 becomes shorter, an inactive region in which displacement is suppressed increases as much. Additionally, with such a configuration, a fixing jig 252 including an upper holding portion 252u and a lower holding portion 252d whose length is larger than the length of the upper holding portion 252u can be used as a fixing jig with which the first surface electrode 105 and the second surface electrode 106 are not bitten.
(61) Accordingly, in the multi-layer piezoelectric ceramic component 100 held by the fixing jig 252, displacement is forcibly suppressed by also the fixing jig 252, and internal stress mainly occurs along a line 100L connecting a tip end of the upper holding portion 252u and a tip end of the lower holding portion 252d (stress S2). As shown in
(62) Accordingly, when the multi-layer piezoelectric ceramic component 100 is caused to operate, a load is less likely to be applied to the vicinity of the one end fixed with the fixing jig 252. For example, the crush of the piezoelectric ceramic body 101 or the peel-off of the piezoelectric ceramic body 101 and each electrode is suppressed. As a result, in the multi-layer piezoelectric ceramic component 100, the breakdown of the element is less likely to occur, and the reliability is improved.
(63) Further, in the multi-layer piezoelectric ceramic component 100, the thickness of each layer of the piezoelectric ceramic body 101, the first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 can be set to be substantially the same, and thus a special forming method or green sheets having different layer thicknesses are unnecessary. This achieves the simplification of the process and the improvement in lead time and suppresses the increase in cost.
(64) It should be noted that the length of the second surface electrode 106 may be configured to be larger than the length of the first surface electrode 105 in this embodiment. In this configuration, the fixing jig 252 can be used upside down from the state of
(65) Further, the fixing jig 252 may be made of an insulating material or may be made of metal. In particular, when the fixing jig 252 is made of metal, an insulating material (adhesive) or the like is interposed between the fixing jig 252 and the multi-layer piezoelectric ceramic component 100 such that the first end surface terminal electrode 107 and the second end surface terminal electrode 108 are not short-circuited.
(66) Regarding Structure without Side Margin
(67) As described above, the multi-layer piezoelectric ceramic component 100 has a structure in which the first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 are exposed at the first side surface 101a and the second side surface 101b.
(68)
(69) As shown in
(70) In the multi-layer piezoelectric ceramic component 300, the internal electrodes are not exposed at the side surfaces and are embedded in the piezoelectric ceramic body 301. As shown in
(71) The side margins S are not sandwiched by the internal electrodes in the Z-axis direction when the multi-layer piezoelectric ceramic component 300 is driven. Thus, the side margins S act as restraint portions that suppress the displacement of the multi-layer piezoelectric ceramic component 300. This reduces displacement performance of the multi-layer piezoelectric ceramic component 300.
(72) To the contrary, in the multi-layer piezoelectric ceramic component 100, each width of the first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 is equal to a distance between the pair of side surfaces 101a and 101b. In other words, the first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 are exposed at the first side surface 101a and the second side surface 101b in the multi-layer piezoelectric ceramic component 100, and the multi-layer piezoelectric ceramic component 100 does not include side margins. Thus, it is possible to generate large displacement without receiving a restraint effect provided by the side margins and to prevent the displacement performance from being reduced.
(73) Regarding Insulating Film
(74) The multi-layer piezoelectric ceramic component 100 may include an insulating film.
(75) As shown in
(76) The range covered with the insulating film 112 is not limited to the range shown in
(77) The material of the insulating film 112 is not particularly limited as long as the material is an insulating material. For example, an insulating resin such as a SiN or acrylic resin is suitable. It should be noted that the insulating film 112 is made of a material different from the material of the piezoelectric ceramic body 101, and a soft material can be used therefor. Thus, a restraint effect provided by the insulating film 112 can be made significantly small. In other words, in the multi-layer piezoelectric ceramic component 100, the displacement performance is prevented from being reduced.
(78) Regarding Production Method
(79) A production method for the multi-layer piezoelectric ceramic component 100 will be described.
(80) The multi-layer piezoelectric ceramic component 100 can be produced by laminating sheet members.
(81)
(82) First, a sheet member including only a piezoelectric ceramic body (hereinafter, referred to as piezoelectric sheet member) is laminated on the sheet member 250, and thereon, the sheet member 240, a piezoelectric sheet member, and the sheet member 230 are laminated in this order. Moreover, the sheet members 240 and the sheet members 230 are alternately laminated via piezoelectric sheet members.
(83) Subsequently, the sheet members 220 and the sheet members 230 are alternately laminated via piezoelectric sheet members, and thereon, a piezoelectric sheet member and the sheet member 210 are laminated in this order. Subsequently, this laminate is pressure-bonded, and a binder is removed by heating or the like.
(84) Subsequently, sintering is performed. At this stage, each internal electrode is embedded in the piezoelectric ceramic body 201, and side margins are formed. Subsequently, by heat treatment, the first end surface terminal electrode 107 and the second end surface terminal electrode 108 are formed on the first end surface 101c, and the third end surface terminal electrode 109 is formed on the second end surface 101d.
(85) Subsequently, the side margins are cut and removed. Accordingly, the piezoelectric ceramic body 101 is formed from the piezoelectric ceramic bodies 201. The cutting of the side margins can be performed by dicing or laser irradiation. When the side margins are cut, the first side surface 101a and the second side surface 101b are formed, and the first internal electrodes 102, the second internal electrodes 103, and the third internal electrodes 104 are exposed at the first side surface 101a and the second side surface 101b (see
(86) Subsequently, the insulating film 112 including the opening 112a is formed (see
(87) The multi-layer piezoelectric ceramic component 100 can be produced as described above. It should be noted that the production method for the multi-layer piezoelectric ceramic component 100 is not limited to the method described herein.
(88) Regarding Piezoelectric Device
(89) The multi-layer piezoelectric ceramic component 100 can be mounted to a vibration member to configure a piezoelectric device.
(90) The vibration member 410 is a metal plate or a glass panel of a display and is not particularly limited. The joint 420 is made of a resin or the like and joins the multi-layer piezoelectric ceramic component 100 to the vibration member 410.
(91) In the multi-layer piezoelectric ceramic component 100, a region of the upper surface 101e on the first end surface 101c side is joined to the joint 420. Wiring (not shown) is electrically connected to the first surface terminal electrode 110, the second surface terminal electrode 111, and the first surface electrode 105.
(92) When a voltage is applied to each electrode, as described above, the multi-layer piezoelectric ceramic component 100 is deformed in the Z-axis direction (arrow in
(93) Hereinabove, the embodiment of the present disclosure has been described, but the present disclosure is not limited to the embodiment described above and can be variously modified as a matter of course. Each embodiment is not limited to be an independent embodiment, and some embodiments can be combined as long as it is technically possible.